Feasibility and Optimization Study on the Replacement of Core Rock Columns with Temporary Steel Supports in the Construction of Large-Section Subway Tunnels in Interbedded Rock Masses
Abstract
1. Introduction
2. Aim of the Work
3. Project Overview
4. Research Plan and Feasibility Analysis
4.1. Model Construction
4.2. Simulation Plan
5. Tunnel Deformation Analysis
5.1. Maximum Rock Mass Deformation Analysis
5.2. Analysis of Rock Mass Deformation Around Structural Support Components
5.3. Analysis of the Rationality of Temporary Steel Columns
5.4. Numerical Model Validation
6. Analysis of the Optimal Spacing for Temporary Steel Columns
6.1. Analysis of the Impact of Interlayer Position on Surrounding Rock Deformation
6.2. Analysis of the Effect of Interlayer Inclination on Rock Mass Deformation When the Interlayer Is Located Above the Tunnel Cross-Section
6.3. Analysis of the Optimal Spacing of Temporary Steel Columns
6.3.1. Spacing Analysis Under the Worst-Case Scenario
6.3.2. Spacing Analysis for All Stratigraphic Conditions
6.4. Application at Construction Sites
7. Discussion
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Wang, S.W. Experimental Study on Mechanical Properties and Constitutive Model of Soft and Hard Interbedded Rocks. Master’s Thesis, Yangtze University, Jinzhou, China, 2023. [Google Scholar]
- Wu, Q.; Liu, Y.; Tang, H.; Kang, J.; Wang, L.; Li, C.; Wang, D.; Liu, Z. Experimental study of the influence of wetting and drying cycles on the strength of intact rock samples from a red stratum in the Three Gorges Reservoir area. Eng. Geol. 2023, 314, 107013. [Google Scholar] [CrossRef]
- Tian, S.M.; Wang, W.; Tang, G.R.; Li, X. Study on Countermeasures for Major Unfavorable Geological Issues of Tunnels on Sichuan-Tibet Railway. Tunn. Constr. 2021, 41, 697. [Google Scholar]
- Pu, S.; Wu, R.; Wu, S.; Cheng, H.; Cao, L.; Ren, Z. Analysis of Deformation Characteristics and Failure Mechanism of Interbedded Surrounding Rock Tunnels Based on Principal Stress Difference. Int. J. Geomech. 2024, 24, 04024197. [Google Scholar] [CrossRef]
- Liu, L. Mechanism of Over-Under-Excavation and Stability Control of Surrounding Rocks in Interbedded Rock Masses. Anal. Pract. Exam 2023, 21, 45–51. [Google Scholar]
- Liu, J. Study on Construction Stability of Biased Closely-Spaced Twin Tunnels in Horizontal Soft-Hard Interbedded Rock Mass. Master’s Thesis, Chongqing Jiaotong University, Chongqing, China, 2022. [Google Scholar]
- Shao, Y.Y. Study on Surrounding Rock Stability and Failure Modes of Tunnel in Layered Rock Masser. Master’s Thesis, Southwest Jiaotong University, Chengdu, China, 2013. [Google Scholar]
- Fan, C.T. Study on the Stability and Fine Classification of Layered Surrounding Rock of Deep-buried Railway Tunnel. Ph.D. Dissertation, Lanzhou Jiaotong University, Lanzhou, China, 2024. [Google Scholar]
- Zhao, D.; He, Q.; Ji, Q.; Wang, F.; Tu, H.; Shen, Z. Similar model test of a mudstone-interbedded-sandstone-bedding rock tunnel. Tunn. Undergr. Space Technol. 2023, 140, 105299. [Google Scholar] [CrossRef]
- Avci, M. “Noah’s ark”: Its relationship to the telceker earthflow, mount Ararat, eastern Turkey. Bull. Eng. Geol. Environ. 2007, 66, 377–380. [Google Scholar] [CrossRef]
- Boulanger, R.W.; Munter, S.K.; Krage, C.P.; DeJong, J.T. Liquefaction Evaluation of Interbedded Soil Deposit: Cark Canal in 1999 M7.5 Kocaeli Earthquake. J. Geotech. Geoenviron. Eng. 2019, 145, 05019007. [Google Scholar] [CrossRef]
- Przecherski, P.; Pietruszczak, S. On specification of conditions at failure in interbedded sedimentary rock mass. Acta Geotech. 2020, 15, 365–374. [Google Scholar] [CrossRef]
- Eang, K.E.; Igarashi, T.; Kondo, M.; Nakatani, T.; Tabelin, C.B.; Fujinaga, R. Groundwater monitoring of an open-pit limestone quarry: Water-rock interaction and mixing estimation within the rock layers by geochemical and statistical analyses. Int. J. Min. Sci. Technol. 2018, 28, 849–857. [Google Scholar] [CrossRef]
- Hua, L.; Tian, Y.; Gui, Y.; Liu, W.; Wu, W. Semi-Analytical Study of Pile–Soil Interaction on a Permeable Pipe Pile Subjected to Rheological Consolidation of Clayey Soils. Int. J. Numer. Anal. Methods Geomech. 2025, 49, 1058–1074. [Google Scholar] [CrossRef]
- Wang, K.; Ye, J.; Wang, X.; Qiu, Z. The Soil-Arching Effect in Pile-Supported Embankments: A Review. Buildings 2024, 14, 126. [Google Scholar] [CrossRef]
- Hu, D.; Liu, J.; Li, Y.; Tan, Z. Prediction method of ground settlement for rectangular tunnel construction. Tunn. Undergr. Space Technol. 2025, 164, 106814. [Google Scholar] [CrossRef]
- Wang, M.; Fang, Z.; Li, X.; Kang, J.; Wei, Y.; Wang, S.; Zheng, Y.; Zhang, X.; Liu, T. Research on the Prediction Method of 3D Surface Deformation in Filling Mining Based on InSAR-IPIM. Energy Sci. Eng. 2025, 13, 2401–2414. [Google Scholar] [CrossRef]
- Li, Y.; Weng, X.; Hu, D.; Tan, Z.; Liu, J. Data-Driven Method for Predicting Long-Term Underground Pipeline Settlement Induced by Rectangular Pipe Jacking Tunnel Construction. J. Pipeline Syst. Eng. Pract. 2025, 16, 4025046. [Google Scholar] [CrossRef]
- Miura, K. Design and construction of mountain tunnels in Japan. Tunn. Undergr. Space Technol. 2003, 18, 115–126. [Google Scholar] [CrossRef]
- Haack, A. Political and social aspects of present and future tunneling. In Tenth Australian Tunnelling Conference: The Race for Space; Routledge: Abingdon, UK, 1999; pp. 21[b]–23[b]. [Google Scholar]
- Tuneyoshi, U. Mechanizing and construction result of world largest diameter tunnel for Trans-Tokyo Bay Highway. In Challenges for the 21st Century, Proceedings of the World Tunnel Congress 99, Oslo, Norway, 31 May–3 June 1999; AABalkema: Rotterdam, The Netherlands, 1999; pp. 543–554. [Google Scholar]
- Kivi, A.V.; Sadaghiani, M.H.; Ahmadi, M.M. Numerical modeling of ground settlement control of large span underground metro station in Tehran Metro using Central Beam Column (CBC) structure. Tunn. Undergr. Space Technol. 2012, 28, 1–9. [Google Scholar] [CrossRef]
- Galli, G.; Grimaldi, A.; Leonardi, A. Three-dimensional modelling of tunnel excavation and lining. Comput. Geotech. 2004, 31, 171–183. [Google Scholar] [CrossRef]
- Miura, K.; Yagi, H.; Shiroma, H.; Takekuni, K. Study on design and construction method for the New Tomei–Meishin expressway tunnels. Tunn. Undergr. Space Technol. 2003, 18, 271–281. [Google Scholar] [CrossRef]
- Zhang, J.Q. Study on Construction Technology of Large Section and Three-Dimensional Cross-Section of Excavation Transfer Station. Master’s Thesis, Beijing Jiaotong University, Beijing, China, 2010. [Google Scholar]
- Yao, Y.; Huang, H.; Zhang, W.; Ye, Y.; Xin, L.; Liu, Y. Seismic performance of steel-PEC spliced frame beam. J. Constr. Steel Res. 2022, 197, 107456. [Google Scholar] [CrossRef]
- Yao, Y.; Zhou, L.; Huang, H.; Chen, Z.; Ye, Y. Cyclic performance of novel composite beam-to-column connections with reduced beam section fuse elements. Structures 2023, 50, 842–858. [Google Scholar] [CrossRef]
- Huang, H.; Yao, Y.; Zhang, W. A push-out test on partially encased composite column with different positions of shear studs. Eng. Struct. 2023, 289, 116343. [Google Scholar] [CrossRef]
- TB 10003-2016; Railway Tunnel Design Specifications. National Railway Administration: Beijing, China, 2016.
- GB 50307-2012; Code for Geotechnical Investigation of Urban Rail Transit. CN-GB: London, UK, 2012.
- Do, N.A.; Dias, D.; Tran, T.T.; Dao, V.C.; Dao, V.D.; Nguyen, P.N. Behavior of noncircular tunnels excavated in stratified rock masses–Case of underground coal mines. J. Rock Mech. Geotech. Eng. 2019, 11, 99–110. [Google Scholar] [CrossRef]
- Wu, S.; Wu, J.; Liu, D. Research on Construction Sequences and Construction Methods of the Small Clear-Distance, Double-Arch Tunnel under an Asymmetrical Load. Appl. Sci. 2023, 13, 8242. [Google Scholar] [CrossRef]
- Fang, Z.C. Study on Failure Mechanism and Deformation Control of Tunnels in Soft and Hard Interbedded Rock Mass with High Geo-Stress. Ph.D. Dissertation, Shijiazhuang Tiedao University, Shijiazhuang, China, 2023. [Google Scholar]
- Qian, J.W. Research on Stability and Reinforcement of Mountain Tunnel Under the Effect of Fluid-Solid Coupling. Master’s Thesis, Beijing Jiaotong University, Beijing, China, 2021. [Google Scholar]
- GB 50911-2013; Technical Specifications for Monitoring Urban Rail Transit Projects. National Railway Administration: Beijing, China, 2014.
Category | Severe (KN/m3) | Elastic Modulus (MPa) | Poisson’s Ratio | Friction Angle | Cohesion (kPa) | Material Type | Property |
---|---|---|---|---|---|---|---|
Backfilling Soil | 18.0 | 5 | 0.33 | 15 | 20 | Mohr–Coulomb | Physical Unit |
Limestone | 24.9 | 3564 | 0.14 | 40.7 | 1560 | Mohr–Coulomb | Physical Unit |
Sandy Mudstone | 25.6 | 1431 | 0.37 | 32.6 | 640 | Mohr–Coulomb | Physical Unit |
Steel Support | 78.5 | 210,000 | 0.3 | / | / | Elastic Unit | Plate Unit (Computing) |
Initial Support | 25 | 10,000 | 0.2 | / | / | Elastic Unit | Plate Unit (Computing) |
Simulation Plan | Spacing | Schematic Diagram |
---|---|---|
1 | 15 m | |
2 | 17.5 m | |
3 | 20 m | |
4 | 22.5 m | |
5 | 25 m | |
6 | 27.5 m |
Alert Level | Warning Conditions | Early Warning Measures |
---|---|---|
Ⅰ | Cumulative Deformation Value < 17 mm | Real-time Monitoring |
Ⅱ | 17 mm ≤ Cumulative Deformation Value < 20 mm | Send Early Warning Messages; Conduct Encrypted Monitoring; Take Measures such as Optimising Support. |
Ⅲ | Cumulative Deformation Value ≥ 20 mm | Activate the Emergency Response Plan and Suspend Construction. |
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Liu, D.; Zhang, Y.; Zhong, J.; Jin, Y. Feasibility and Optimization Study on the Replacement of Core Rock Columns with Temporary Steel Supports in the Construction of Large-Section Subway Tunnels in Interbedded Rock Masses. Appl. Sci. 2025, 15, 9616. https://doi.org/10.3390/app15179616
Liu D, Zhang Y, Zhong J, Jin Y. Feasibility and Optimization Study on the Replacement of Core Rock Columns with Temporary Steel Supports in the Construction of Large-Section Subway Tunnels in Interbedded Rock Masses. Applied Sciences. 2025; 15(17):9616. https://doi.org/10.3390/app15179616
Chicago/Turabian StyleLiu, Dunwen, Yupeng Zhang, Jimin Zhong, and Yuhui Jin. 2025. "Feasibility and Optimization Study on the Replacement of Core Rock Columns with Temporary Steel Supports in the Construction of Large-Section Subway Tunnels in Interbedded Rock Masses" Applied Sciences 15, no. 17: 9616. https://doi.org/10.3390/app15179616
APA StyleLiu, D., Zhang, Y., Zhong, J., & Jin, Y. (2025). Feasibility and Optimization Study on the Replacement of Core Rock Columns with Temporary Steel Supports in the Construction of Large-Section Subway Tunnels in Interbedded Rock Masses. Applied Sciences, 15(17), 9616. https://doi.org/10.3390/app15179616